IEEE Trans Ultrason Ferroelectr Freq Control. 2024 May;71(5):536-557. doi: 10.1109/TUFFC.2024.3381529. Epub 2024 May 10.
Ultrasound elastography (USE) is a promising tool for tissue characterization as several diseases result in alterations of tissue structure and composition, which manifest as changes in tissue mechanical properties. By imaging the tissue response to an applied mechanical excitation, USE mimics the manual palpation performed by clinicians to sense the tissue elasticity for diagnostic purposes. Next to elasticity, viscosity has recently been investigated as an additional, relevant, diagnostic biomarker. Moreover, since biological tissues are inherently viscoelastic, accounting for viscosity in the tissue characterization process enhances the accuracy of the elasticity estimation. Recently, methods exploiting different acquisition and processing techniques have been proposed to perform ultrasound viscoelastography. After introducing the physics describing viscoelasticity, a comprehensive overview of the currently available USE acquisition techniques is provided, followed by a structured review of the existing viscoelasticity estimators classified according to the employed processing technique. These estimators are further reviewed from a clinical usage perspective, and current outstanding challenges are discussed.
超声弹性成像(USE)是一种很有前途的组织特征分析工具,因为几种疾病会导致组织结构和组成发生改变,这些改变表现为组织力学性质的变化。通过对组织对施加的机械激励的响应进行成像,USE 模拟了临床医生为诊断目的而进行的手动触诊,以感知组织弹性。除了弹性之外,粘度最近也被作为另一个相关的诊断生物标志物进行了研究。此外,由于生物组织本质上是粘弹性的,在组织特征分析过程中考虑到粘度可以提高弹性估计的准确性。最近,已经提出了利用不同采集和处理技术的方法来进行超声粘弹性成像。在介绍描述粘弹性的物理原理之后,提供了当前可用的 USE 采集技术的全面概述,然后根据所采用的处理技术对现有的粘弹性估计器进行了分类的结构化回顾。从临床使用的角度进一步审查了这些估计器,并讨论了当前存在的突出挑战。